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  • Dynamic Neural Networks for Motion Control of Redundant Manipulators

    Dynamic Neural Networks for Motion Control of Redundant Manipulators by Liu, Mei; Yan, Jingkun; Huang, Renpeng;

    Series: Intelligent Control and Learning Systems; 21;

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      • Publisher's listprice EUR 160.49
      • The price is estimated because at the time of ordering we do not know what conversion rates will apply to HUF / product currency when the book arrives. In case HUF is weaker, the price increases slightly, in case HUF is stronger, the price goes lower slightly.

        66 563 Ft (63 393 Ft + 5% VAT)
      • Discount 20% (cc. 13 313 Ft off)
      • Discounted price 53 250 Ft (50 714 Ft + 5% VAT)

    66 563 Ft

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    Product details:

    • Publisher Springer Nature Singapore
    • Date of Publication 2 October 2025
    • Number of Volumes 1 pieces, Book

    • ISBN 9789819691432
    • Binding Hardback
    • No. of pages226 pages
    • Size 235x155 mm
    • Language English
    • Illustrations XVI, 226 p. 72 illus., 67 illus. in color. Illustrations, black & white
    • 700

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    Long description:

    This book discusses the development and application of dynamic neural networks (DNNs) for solving complex motion control problems in redundant manipulators. Specifically, it presents a series of advanced DNNs, including noise-rejection DNNs, fuzzy-parameter DNNs, and so on, which are designed to optimize performance while ensuring robustness and computational efficiency. Based on the presented DNNs, this book further constructs a series of motion control schemes for redundant manipulators to address some key challenges such as cyclic motion, position and orientation tracking, and model-unknown scenarios. Each method is rigorously demonstrated for the convergence, and its effectiveness is validated through simulations and physical experiments. By integrating computational intelligence with control theory, this book provides a comprehensive framework for solving time-varying and noise-perturbed problems in robotics, making it a valuable resource for researchers and practitioners in the field.

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    Table of Contents:

    .- 1. Double-Index Control With DNN

    .- 2. Cyclic Motion Control With Noise-Rejection DNN

    .- 3. Trajectory-Tracking MPC With Z-type DNN

    .- 4. Motion/Force Control With Fuzzy DNN

    .- 5. Orientation Tracking Incorporated Multi-Criteria Control With DNN

    .- 6. Position and Orientation-Tracking MPC With Finite-Time DNN

    .- 7. Data-Driven RC2M Control With DNN

    .- 8. Cerebellum-Inspired MPC With Discrete DNN.

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